Abstract
The prevailing paradigm for G protein-coupled receptors is that each receptor is narrowly tuned to its ligand and closely related agonists. An outstanding problem is whether this paradigm applies to olfactory receptor (ORs), which is the largest gene family in the genome, in which each of 1,000 different G protein-coupled receptors is believed to interact with a range of different odor molecules from the many thousands that comprise "odor space." Insights into how these interactions occur are essential for understanding the sense of smell. Key questions are: (i) Is there a binding pocket? (ii) Which amino acid residues in the binding pocket contribute to peak affinities? (iii) How do affinities change with changes in agonist structure? To approach these questions, we have combined single-cell PCR results [Malnic, B., Hirono, J., Sato, T. & Buck, L. B. (1999) Cell 96, 713-723] and well-established molecular dynamics methods to model the structure of a specific OR (OR S25) and its interactions with 24 odor compounds. This receptor structure not only points to a likely odor-binding site but also independently predicts the two compounds that experimentally best activate OR S25. The results provide a mechanistic model for olfactory transduction at the molecular level and show how the basic G protein-coupled receptor template is adapted for encoding the enormous odor space. This combined approach can significantly enhance the identification of ligands for the many members of the OR family and also may shed light on other protein families that exhibit broad specificities, such as chemokine receptors and P450 oxidases.
MeSH Terms
Animals
GTP-Binding Proteins/physiology
Ligands
Mice
Olfactory Pathways/physiology
Receptors, Odorant/physiology
Signal Transduction/physiology
Chemicals
Ligands
Receptors, Odorant
GTP-Binding Proteins
Authors & Affiliations
5 authors, click to expand affiliations / ORCID
Floriano W B
Materials and Process Simulation Center, Beckman Institute (139), California Institute of Technology, Pasadena, CA 91125, USA.
Vaidehi N
Goddard W A
Singer M S
Shepherd G M
References (20)
20 references, click to expand
-
Nasal mucociliary clearance & mucus pH in patients with diabetes mellitus.
Indian J Med Res. 1993 Dec;98:265-8
PMID: 8132227
-
Expression of an olfactory receptor in Escherichia coli: purification, reconstitution, and ligand binding.
Biochemistry. 1996 Dec 17;35(50):16077-84
PMID: 8973178
-
WHAT IF: a molecular modeling and drug design program.
J Mol Graph. 1990 Mar;8(1):52-6, 29
PMID: 2268628
-
Solvent-accessible surfaces of proteins and nucleic acids.
Science. 1983 Aug 19;221(4612):709-13
PMID: 6879170
-
Determination of the chromophoric binding site in native bovine rhodopsin.
Biochemistry. 1970 Apr 14;9(8):1809-16
PMID: 5439039
-
Seven-transmembrane proteins as odorant and chemosensory receptors.
Science. 1999 Oct 22;286(5440):707-11
PMID: 10531047
-
Electron-crystallographic refinement of the structure of bacteriorhodopsin.
J Mol Biol. 1996 Jun 14;259(3):393-421
PMID: 8676377
-
[Composition and structure of the neuronal membrane: molecular basis of its physiology and pathology].
Rev Neurol. 1998 Feb;26(150):232-9
PMID: 9563093
-
Modelling alpha-helical transmembrane domains.
Biochem Soc Trans. 1993 Feb;21(1):36-9
PMID: 8449316
-
A geometric approach to macromolecule-ligand interactions.
J Mol Biol. 1982 Oct 25;161(2):269-88
PMID: 7154081
-
Combinatorial receptor codes for odors.
Cell. 1999 Mar 5;96(5):713-23
PMID: 10089886
-
Structure of rhodopsin.
Eye (Lond). 1998;12 ( Pt 3b):504-10
PMID: 9775210
-
Protein simulations using techniques suitable for very large systems: the cell multipole method for nonbond interactions and the Newton-Euler inverse mass operator method for internal coordinate dynamics.
Proteins. 1994 Nov;20(3):227-47
PMID: 7892172
-
All-atom empirical potential for molecular modeling and dynamics studies of proteins.
J Phys Chem B. 1998 Apr 30;102(18):3586-616
PMID: 24889800
-
The variable and conserved interfaces of modeled olfactory receptor proteins.
Protein Sci. 1999 May;8(5):969-77
PMID: 10338007
-
Structural basis of beta-adrenergic receptor function.
FASEB J. 1989 May;3(7):1825-32
PMID: 2541037
-
Positive selection moments identify potential functional residues in human olfactory receptors.
Receptors Channels. 1996;4(3):141-7
PMID: 9014237
-
Identification of ligands for olfactory receptors by functional expression of a receptor library.
Cell. 1998 Dec 23;95(7):917-26
PMID: 9875846
-
A novel multigene family may encode odorant receptors: a molecular basis for odor recognition.
Cell. 1991 Apr 5;65(1):175-87
PMID: 1840504
-
Molecular modeling of ligand-receptor interactions in the OR5 olfactory receptor.
Neuroreport. 1994 Jun 2;5(10):1297-300
PMID: 7919185